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Supervised Classification of Metatranscriptomic Reads Reveals the Existence of Light-dark Oscillations During Infection of Phytoplankton by Viruses

机译:MetaTranscriptomic读取的监督分类揭示了病毒感染浮游植物期间光暗振荡的存在

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In the era of next generation sequencing technologies microbial species identification is typically performed using sequence similarity and sequence phylogeny based approaches. Particularly challenging is the discrimination of closely related sequences such as auxiliary metabolic genes (AMGs) in cyanobacteria and their viruses (cyanophages). Here we developed a method which combines Support Vector Machine based classification of AMGs short fragments and Empirical Mode Decomposition of periodic features in time-series. We applied this method to investigate the transcriptional dynamics of viral infection in the ocean, using data extracted from a previously published metatranscriptome profile of a naturally occurring oceanic bacterial assemblage sampled Lagrangially over 3 days. We discovered the existence of light-dark oscillations in the expression patterns of AMGs in cyanophages which follow the harmonic diel transcription of both oxygenic photoautotrophic and heterotrophic members of the community. These findings suggest that viral infection might provide the link between light-dark oscillations of microbial populations in the North Pacific Subtropical Gyre.
机译:在下一代测序技术的时代,通常使用序列相似性和基于序列的方法进行微生物物种鉴定。特别具有挑战性是鉴别密切相关的序列,如蓝藻和它们的病毒(慢性病毒中的辅助代谢基因(AMGS)。在这里,我们开发了一种方法,该方法结合了基于支持的AMGS短片段分类和定期分解的时间序列中的周期性特征。我们应用了这种方法来研究海洋中病毒感染的转录动态,使用从先前公布的海洋细菌组合的甲状腺细菌组合的型拉格朗加术中的预先发布的甲状腺肿型剖面中提取的数据。我们发现了在逐渐释放次氧纺织和异养型成员的谐波二极管的慢性二极管转录中的AMGs表达模式中的光暗振荡。这些研究结果表明,病毒感染可能提供北太平洋亚热带孢子的微生物群光暗振荡之间的联系。

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